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Entropy-driven formation of binary semiconductor-nanocrystal superlattices

机译:熵驱动的二元半导体纳米晶超晶格形成

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摘要

One of the main reasons for the current interest in colloidal nanocrystals is their propensity to form superlattices, systems in which (different) nanocrystals are in close contact in a well-ordered three-dimensional (3D) geometry resulting in novel material properties. However, the principles underlying the formation of binary nanocrystal superlattices are not well understood. Here, we present a study of the driving forces for the formation of binary nanocrystal superlattices by comparing the formed structures with full free energy calculations. The nature (metallic or semiconducting) and the size-ratio of the two nanocrystals are varied systematically. With semiconductor nanocrystals, self-organization at high temperature leads to superlattices (AlB_2, NaZn_(13), MgZn_2) in accordance with the phase diagrams for binary hard-sphere mixtures; hence entropy increase is the dominant driving force. A slight change of the conditions results in structures that are energetically stabilized. This study provides rules for the rational design of 3D nanostructured binary semiconductors, materials with promises in thermoelectrics and photovoltaics and which cannot be reached by any other technology.
机译:当前对胶体纳米晶体感兴趣的主要原因之一是它们倾向于形成超晶格,超晶格是其中(不同的)纳米晶体以有序的三维(3D)几何形状紧密接触的系统,从而产生了新颖的材料特性。但是,对二元纳米晶体超晶格形成的原理还没有很好的理解。在这里,我们通过将形成的结构与完全自由能计算进行比较,来研究二元纳米晶体超晶格形成的驱动力。两个纳米晶体的性质(金属或半导体性质)和尺寸比率会系统地变化。对于半导体纳米晶体,根据二元硬球混合物的相图,在高温下的自组织导致超晶格(AlB_2,NaZn_(13),MgZn_2);因此,熵增加是主要驱动力。条件的轻微变化导致结构在能量上稳定。这项研究为合理设计3D纳米结构二元半导体提供了规则,这些材料在热电和光伏领域具有广阔的前景,而其他任何技术都无法实现。

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